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14-05-2021

Development and Application Prospects of Aluminum–Lithium Alloys in Aircraft and Space Technology

Authors: E. N. Kablov, V. V. Antipov, J. S. Oglodkova, M. S. Oglodkov

Published in: Metallurgist | Issue 1-2/2021

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Abstract

The article delves into the historical development and future prospects of aluminum-lithium alloys in aircraft and space technology. It discusses the significance of these alloys in reducing weight and improving structural efficiency, highlighting key milestones and applications in the aerospace industry. The text also explores the challenges and solutions in the development of these alloys, emphasizing the need for further advancements in metallurgical production to fully leverage their potential.

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Literature
1.
go back to reference E. N. Kablov, “Russia needs new generation materials,” Redkie Zemli, No. 3, 8–13 (248) (2014). E. N. Kablov, “Russia needs new generation materials,” Redkie Zemli, No. 3, 8–13 (248) (2014).
2.
go back to reference E. N. Kablov, “Materials and chemical technologies for aviation technology,” Vest. Ross. Akad. Nauk, 82, No. 6, 520 (200) (2012). E. N. Kablov, “Materials and chemical technologies for aviation technology,” Vest. Ross. Akad. Nauk, 82, No. 6, 520 (200) (2012).
3.
go back to reference E. N. Kablov, “Modern materials as the basis of innovative modernization of Russia,” Metally Yevrazii, No. 3, 10–15 (189) (2012). E. N. Kablov, “Modern materials as the basis of innovative modernization of Russia,” Metally Yevrazii, No. 3, 10–15 (189) (2012).
4.
go back to reference E. N. Kablov, “Strategic directions for the development of materials and technologies for their processing for the period up to 2030,” Aviatsion. Mater. Tekhn., No. S, 7–17 (197) (2012). E. N. Kablov, “Strategic directions for the development of materials and technologies for their processing for the period up to 2030,” Aviatsion. Mater. Tekhn., No. S, 7–17 (197) (2012).
5.
go back to reference V. V. Antipov, “Prospects for the development of aluminum, magnesium and titanium alloys for aircraft and space technology,” Aviatsion. Mater. Tekhn., No. S, 186–194 (2017); DOI:10.18577/2071-9140-2017-0-S-186-194. V. V. Antipov, “Prospects for the development of aluminum, magnesium and titanium alloys for aircraft and space technology,” Aviatsion. Mater. Tekhn., No. S, 186–194 (2017); DOI:10.18577/2071-9140-2017-0-S-186-194.
6.
go back to reference Ya. A. Erisov and F. V. Grechnikov, “Physical modeling of hot rolling of an alloy of low density of the Al–Mg–Li–Zr–Zn–Sc system,” Metallurg, No. 9, 103–108 (2017). Ya. A. Erisov and F. V. Grechnikov, “Physical modeling of hot rolling of an alloy of low density of the Al–Mg–Li–Zr–Zn–Sc system,” Metallurg, No. 9, 103–108 (2017).
7.
go back to reference N. E. Prasad, A. Gokhale, and R. J. H. Wanhill, Aluminum-Lithium Alloys: Processing, Properties, and Applications, Elsevier Butterworth-Heinemann, Oxford (2014). N. E. Prasad, A. Gokhale, and R. J. H. Wanhill, Aluminum-Lithium Alloys: Processing, Properties, and Applications, Elsevier Butterworth-Heinemann, Oxford (2014).
8.
go back to reference O. E. Grushko, B. V. Ovsyannikov, and V. V. Ovchinnikov, Aluminum-Lithium Alloys: Metallurgy, Welding, Metallurgical Science [in Russian], Nauka, Moscow (2014). O. E. Grushko, B. V. Ovsyannikov, and V. V. Ovchinnikov, Aluminum-Lithium Alloys: Metallurgy, Welding, Metallurgical Science [in Russian], Nauka, Moscow (2014).
9.
go back to reference International Alloy Designations and Chemical Composition Limits for Wrought Aluminum and Wrought Aluminum Alloys, Copyright 2015, The Aluminum Association, Inc. (2015). International Alloy Designations and Chemical Composition Limits for Wrought Aluminum and Wrought Aluminum Alloys, Copyright 2015, The Aluminum Association, Inc. (2015).
10.
go back to reference I. N. Friedlander, V. F. Shamray, and N. V. Shiryaeva, The Phenomenon of Increasing the Strength and Rigidity of Alloys of the Aluminum-Magnesium System with a Simultaneous Decrease in Density (the Friedlander Effect), Diploma for invention No. 390, 18.10.1990. I. N. Friedlander, V. F. Shamray, and N. V. Shiryaeva, The Phenomenon of Increasing the Strength and Rigidity of Alloys of the Aluminum-Magnesium System with a Simultaneous Decrease in Density (the Friedlander Effect), Diploma for invention No. 390, 18.10.1990.
11.
go back to reference E. N. Kablov, Aviation Materials. Reference Book, 12 volumes, Vol. 23, Part 1, Book 1, VIAM (2009). E. N. Kablov, Aviation Materials. Reference Book, 12 volumes, Vol. 23, Part 1, Book 1, VIAM (2009).
12.
go back to reference E. N. Kablov, Aviation materials. Reference Book, 12 volumes, Vol. 23, Part 1, Book 2, VIAM (2009). E. N. Kablov, Aviation materials. Reference Book, 12 volumes, Vol. 23, Part 1, Book 2, VIAM (2009).
13.
go back to reference Metallic Materials Properties Development and Standartization (MMPDS), Handbook, 14th ed. (2019). Metallic Materials Properties Development and Standartization (MMPDS), Handbook, 14th ed. (2019).
14.
go back to reference A. J. Morris, S. B. Williams, and M. A. Reynolds, “The effect of processing on the fracture toughness of 8090 T8 sheet,” Proc. of the 5-th Intern. Conf. on Aluminum Alloys. ICAA-5, 187–192 (1996). A. J. Morris, S. B. Williams, and M. A. Reynolds, “The effect of processing on the fracture toughness of 8090 T8 sheet,” Proc. of the 5-th Intern. Conf. on Aluminum Alloys. ICAA-5, 187–192 (1996).
15.
go back to reference E. I. Illarionov, N. I. Kolobnev, and P. Z. Gorbunov, Aluminum Alloys in Aerospace Engineering [in Russian], Nauka, Moscow (2001). E. I. Illarionov, N. I. Kolobnev, and P. Z. Gorbunov, Aluminum Alloys in Aerospace Engineering [in Russian], Nauka, Moscow (2001).
16.
go back to reference N. I. Kolobnev, L. B. Khokhlatova, and E. A. Lukina, Trends in the Development of Aluminum-Lithium Alloys and Technologies for their Processing, Ed. E. N. Kablov, VIAM, Moscow (2019). N. I. Kolobnev, L. B. Khokhlatova, and E. A. Lukina, Trends in the Development of Aluminum-Lithium Alloys and Technologies for their Processing, Ed. E. N. Kablov, VIAM, Moscow (2019).
17.
go back to reference I. N. Fridlyander, “Russian aluminum alloys for aerospace engineering and transport,” Aviatsion. Mater. Tekhn. (Issue: Promising Aluminum, Magnesium and Titanium Alloys for Aerospace Engineering), 3–11 (2002). I. N. Fridlyander, “Russian aluminum alloys for aerospace engineering and transport,” Aviatsion. Mater. Tekhn. (Issue: Promising Aluminum, Magnesium and Titanium Alloys for Aerospace Engineering), 3–11 (2002).
18.
go back to reference V. V. Antipov, N. I. Kolobnev, and L. B. Khokhlatova, “Development of aluminum-lithium alloys and multistage heat treatment modes,” Aviatsion. Mater. Tekhn., No. S, 183–195 (2012). V. V. Antipov, N. I. Kolobnev, and L. B. Khokhlatova, “Development of aluminum-lithium alloys and multistage heat treatment modes,” Aviatsion. Mater. Tekhn., No. S, 183–195 (2012).
19.
go back to reference G. G. Klochkov and A. D. Plotnikov, “Application of new alloys in rocket and space technology,” Tsvetn. Metall., No. 9, 54–55 (2013). G. G. Klochkov and A. D. Plotnikov, “Application of new alloys in rocket and space technology,” Tsvetn. Metall., No. 9, 54–55 (2013).
20.
go back to reference V. V. Antipov, Yu. Yu. Klochkova, and V. A. Romanenko, “Modern aluminum and aluminum-lithium alloys,” Aviatsion. Mater. Tekhn., No. S, 195–211 (2017); DOI: 10.18577/2071-9140-2017-0-S-195-211. V. V. Antipov, Yu. Yu. Klochkova, and V. A. Romanenko, “Modern aluminum and aluminum-lithium alloys,” Aviatsion. Mater. Tekhn., No. S, 195–211 (2017); DOI: 10.18577/2071-9140-2017-0-S-195-211.
21.
go back to reference V. V. Antipov, N. A. Lavro, V. V. Sukhoivanenko, and O. G. Senatorova, “Experience of using Al-Li alloy 1441 and layered materials based on it in seaplanes,” Tsvetn. Metall., No. 9, 46–50 (2013). V. V. Antipov, N. A. Lavro, V. V. Sukhoivanenko, and O. G. Senatorova, “Experience of using Al-Li alloy 1441 and layered materials based on it in seaplanes,” Tsvetn. Metall., No. 9, 46–50 (2013).
22.
go back to reference M. S. Oglodkov, M. V. Grigoriev, S. I. Pakhomkin, and E. N. Ryabova, “Investigation of the influence of homogenization regimes on the mechanical properties of large-sized ingots made of aluminum-lithium alloy V-1481,” VIAM: Elektron. Nauch. Tekhn., Zhurn., No. 8, Art. 01 (2017); URL: http://www.viam-works.ru (date of reference 04/20/2020); DOI: 10.18577/2307-6046-2017-0-8-1-1. M. S. Oglodkov, M. V. Grigoriev, S. I. Pakhomkin, and E. N. Ryabova, “Investigation of the influence of homogenization regimes on the mechanical properties of large-sized ingots made of aluminum-lithium alloy V-1481,” VIAM: Elektron. Nauch. Tekhn., Zhurn., No. 8, Art. 01 (2017); URL: http://​www.​viam-works.​ru (date of reference 04/20/2020); DOI: 10.18577/2307-6046-2017-0-8-1-1.
23.
go back to reference V. A. Romanenko, Yu. Yu. Klochkova, G. G. Klochkov, and I. P. Burlyaeva, “Extruded panel made of aluminum-lithium alloy V1469,” VIAM: Elektron. Nauch. Tekhn., Zhurn., No. 8, Art. 01 (2016); URL: http://www.viam-works.ru (date of reference 04/15/2020); DOI: 10.18577/2307-6046-2017-0-8-1-1. V. A. Romanenko, Yu. Yu. Klochkova, G. G. Klochkov, and I. P. Burlyaeva, “Extruded panel made of aluminum-lithium alloy V1469,” VIAM: Elektron. Nauch. Tekhn., Zhurn., No. 8, Art. 01 (2016); URL: http://​www.​viam-works.​ru (date of reference 04/15/2020); DOI: 10.18577/2307-6046-2017-0-8-1-1.
24.
go back to reference E. N. Kablov, V. V. Antipov, and Yu. Yu. Klochkova, “New generation aluminum-lithium alloys and glass laminate aluminium reinforced epoxy based on them,” Tsvetn. Metall., No. 8 (884), 86–91 (2016). E. N. Kablov, V. V. Antipov, and Yu. Yu. Klochkova, “New generation aluminum-lithium alloys and glass laminate aluminium reinforced epoxy based on them,” Tsvetn. Metall., No. 8 (884), 86–91 (2016).
Metadata
Title
Development and Application Prospects of Aluminum–Lithium Alloys in Aircraft and Space Technology
Authors
E. N. Kablov
V. V. Antipov
J. S. Oglodkova
M. S. Oglodkov
Publication date
14-05-2021
Publisher
Springer US
Published in
Metallurgist / Issue 1-2/2021
Print ISSN: 0026-0894
Electronic ISSN: 1573-8892
DOI
https://doi.org/10.1007/s11015-021-01134-9

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